[1] |
Alabbasi S F, Viramontes A C, Diaz F J et al., 2022. Loss of nuclear basophilic staining as a postmortem interval marker. Am J Foren Med Path, 43: 142-146
DOI
URL
|
[2] |
Alberti F, Gonzalez J, Paijmans J L et al., 2018. Optimized DNA sampling of ancient bones using computed tomography scans. Mol Ecol Resour, 18: 1196-1208
DOI
PMID
|
[3] |
Alibegović A, 2014. Cartilage: a new parameter for the determination of the postmortem interval? J Forensic Leg Med, 27: 39-45
DOI
PMID
|
[4] |
Arkill K, Winlove C, 2008. Solute transport in the deep and calcified zones of articular cartilage. Osteoarthr Cartilage, 16: 708-714
DOI
PMID
|
[5] |
Bailleul A M, 2021. Fossilized cell nuclei are not that rare: review of the histological evidence in the Phanerozoic. Earth Sci Rev, 216: 103599
DOI
URL
|
[6] |
Bailleul A M, Li Z H, 2021. DNA staining in fossil cells beyond the Quaternary: reassessment of the evidence and prospects for an improved understanding of DNA preservation in deep time. Earth Sci Rev, 216: 103600
DOI
URL
|
[7] |
Bailleul A M, Zhou Z H, 2021. SEM analyses of fossilized chondrocytes in the extinct birds Yanornis and Confuciusornis: insights on taphonomy and modes of preservation in the Jehol Biota. Front Earth Sci, 9, doi: 10.3389/feart.2021.718588
DOI
|
[8] |
Bailleul A M, Zheng W, Horner J R et al., 2020. Evidence of proteins, chromosomes and chemical markers of DNA in exceptionally preserved dinosaur cartilage. Natl Sci, 7: 815-822
|
[9] |
Bell L S, Kayser M, Jones C, 2008. The mineralized osteocyte: a living fossil. Am J Phys Anthropol, 137: 449-456
DOI
PMID
|
[10] |
Briggs D, Kear A, Martill D et al., 1993. Phosphatization of soft-tissue in experiments and fossils. Geol Soc, 150: 1035-1038
DOI
URL
|
[11] |
Brucker P U, Izzo N J, Chu C R, 2005. Tonic activation of hypoxia‐inducible factor 1α in avascular articular cartilage and implications for metabolic homeostasis. Arthritis Rheum, 52: 3181-3191
DOI
URL
|
[12] |
Chen X, Wang W, Shang Q et al., 2009. Experimental evidence for eukaryotic fossil preservation: onion skin cells in silica solution. Precambrian Res, 170: 223-230
DOI
URL
|
[13] |
Clark M A, Worrell M B, Pless J E, 1996. Postmortem changes in soft tissues. In: Haglund W D, Sorg M H eds. Forensic Taphonomy:the Postmortem Fate of Human Remains, 1st ed. Boca Raton, Florida: CRC Press. 1-164
|
[14] |
Csönge L, Bravo D, Newman-Gage H et al., 2002. Banking of osteochondral allografts, part II. Preservation of chondrocyte viability during long-term storage. Cell Tissue Bank, 3: 161-168
PMID
|
[15] |
Dettmeyer R B, 2018. Forensic Histopathology:Fundamentals and Perspectives. Giessen: Springer. 1-454
|
[16] |
Drobnic M, Mars T, Alibegović A et al., 2005. Viability of human chondrocytes in an ex vivo model in relation to temperature and cartilage depth. Folia Biol (Praha), 51: 103-108
|
[17] |
Frikha-Benayed D, Basta-Pljakic J, Majeska R J et al., 2016. Regional differences in oxidative metabolism and mitochondrial activity among cortical bone osteocytes. Bone, 90: 15-22
DOI
PMID
|
[18] |
Gamba C, Jones E R, Teasdale M D et al., 2014. Genome flux and stasis in a five millennium transect of European prehistory. Nat Commun, 5: 5257
DOI
PMID
|
[19] |
Genest D R, Williams M A, Greene M F, 1992. Estimating the time of death in stillborn fetuses: I. histologic evaluation of fetal organs; an autopsy study of 150 stillborns. Obstet Gynecol, 80: 575-584
PMID
|
[20] |
George J, Van Wettere A J, Michaels B B et al., 2016. Histopathologic evaluation of postmortem autolytic changes in bluegill (Lepomis macrohirus) and crappie (Pomoxis anularis) at varied time intervals and storage temperatures. PeerJ, 4: e1943
DOI
URL
|
[21] |
Goret-Nicaise M, Dhem A, 1985. Comparison of the calcium content of different tissues present in the human mandible. Cells Tissues Organs, 124: 167-172
DOI
URL
|
[22] |
Götherström A, Collins M, Angerbjörn A et al., 2002. Bone preservation and DNA amplification. Archaeometry, 44: 395-404
DOI
URL
|
[23] |
Hansen H B, Damgaard P B, Margaryan A et al., 2017. Comparing ancient DNA preservation in petrous bone and tooth cementum. PLoS One, 12: e0170940
DOI
URL
|
[24] |
Jang T H, Park S C, Yang J H et al., 2017. Cryopreservation and its clinical applications. Integr Med Res, 6: 12-18
DOI
PMID
|
[25] |
Kierdorf U, Stock S R, Gomez S et al., 2022. Distribution, structure, and mineralization of calcified cartilage remnants in hard antlers. Bone Rep, 16: 101571
|
[26] |
Lasczkowski G E, Aigner T, Gamerdinger U et al., 2002. Visualization of postmortem chondrocyte damage by vital staining and confocal laser scanning 3D microscopy. J Forensic Sci, 47: 663-666
PMID
|
[27] |
Martin D, Briggs D E, Parkes R J, 2003. Experimental mineralization of invertebrate eggs and the preservation of Neoproterozoic embryos. Geology, 31: 39-42
DOI
URL
|
[28] |
Martin D, Briggs D E, Parkes R J, 2005. Decay and mineralization of invertebrate eggs. Palaios, 20: 562-572
DOI
URL
|
[29] |
Murawska D, 2012. The effect of age on the growth rate of tissues and organs and the percentage content of edible and nonedible carcass components in Pekin ducks. Poult Sci, 91: 2030-2038
DOI
URL
|
[30] |
Pallante A L, Bae W C, Chen A C et al., 2009. Chondrocyte viability is higher after prolonged storage at 37ºC than at 4ºC for osteochondral grafts. Am J Sports Med, 37: 24-32
DOI
URL
|
[31] |
Paulis M, Hassan E, Abd-Elgaber N, 2016. Estimation of postmortem interval from cartilage changes of rabbit auricle. Ain-Shams J Forensic Med Clin Toxicol, 26: 61-69
DOI
URL
|
[32] |
Pfander D, Gelse K, 2007. Hypoxia and osteoarthritis: how chondrocytes survive hypoxic environments. Curr Rheumatol Rev, 19: 457-462
|
[33] |
Pinhasi R, Fernandes D, Sirak K et al., 2015. Optimal ancient DNA yields from the inner ear part of the human petrous bone. PLoS One, 10: e0129102
DOI
URL
|
[34] |
Pinhasi R, Fernandes D M, Sirak K et al., 2019. Isolating the human cochlea to generate bone powder for ancient DNA analysis. Nat Protoc, 14: 1194-1205
DOI
PMID
|
[35] |
Powell III J W, 2015. Multiple stain histology of skeletal fractures:healing and microtaphonomy. Ph. D thesis. Florida: University of South Florida. 1-118
|
[36] |
Prondvai E, Witten P E, Abourachid A et al., 2020. Extensive chondroid bone in juvenile duck limbs hints at accelerated growth mechanism in avian skeletogenesis. J Anat, 236: 463-473
DOI
PMID
|
[37] |
Raff E C, Villinski J T, Turner F R et al., 2006. Experimental taphonomy shows the feasibility of fossil embryos. Proc Nat Acad Sci USA, 103: 5846-5851
DOI
URL
|
[38] |
Raff E C, Schollaert K L, Nelson D E et al., 2008. Embryo fossilization is a biological process mediated by microbial biofilms. Proc Nat Acad Sci USA, 105: 19360-19365
DOI
URL
|
[39] |
Rogers C J, Clark K, Hodson B J et al., 2011. Postmortem degradation of porcine articular cartilage. J Forensic Leg Med, 18: 52-56
DOI
PMID
|
[40] |
Sazonova T S, Romanovsky V E, Walsh J E et al., 2004. Permafrost dynamics in the 20th and 21st centuries along the East Siberian transect. J Geophys Res Atmos, 109: 25
|
[41] |
Schweitzer M H, Zheng W, Cleland T P et al., 2013. Molecular analyses of dinosaur osteocytes support the presence of endogenous molecules. Bone, 52: 414-423
DOI
PMID
|
[42] |
Shapiro I M, Golub E E, Kakuta S et al., 1982. Initiation of endochondral calcification is related to changes in the redox state of hypertrophic chondrocytes. Science, 217: 950-952
PMID
|
[43] |
Sirak K, Fernandes D, Cheronet O et al., 2020. Human auditory ossicles as an alternative optimal source of ancient DNA. Genome Res, 30: 427-436
DOI
PMID
|
[44] |
van der Valk T, Pečnerová P, Díez-del-Molino D et al., 2021. Million-year-old DNA sheds light on the genomic history of mammoths. Nature, 591: 265-269
DOI
|
[45] |
Williams S K, Amiel D, Ball S T et al., 2003. Prolonged storage effects on the articular cartilage of fresh human osteochondral allografts. J Bone Joint Surg, 85: 2111-2120
DOI
URL
|
[46] |
Zheng X T, Bailleul A M, Li Z H et al., 2021. Nuclear preservation in the cartilage of the Jehol dinosaur Caudipteryx. Commun Biol, 4: 1-9
DOI
|